The accretion regimes of a highly magnetised NS: the unique case of NuSTAR J095551+6940.8
arXiv:1512.01532 · doi:10.1093/mnras/stw110
Abstract
We analyze archival Chandra HRC observations of the ultra luminous accreting pulsar M82-X2 (NuSTAR J095551+6940.8), and determine an upper limit of ~erg/s to its luminosity at an epoch at which it was undetected. Combined with other recent measurements, this confirms that the source X-ray emission has been highly variable during the last 15 years, ranging from a maximum of erg/s through intermediate values a few erg/s, and down to a minimum that must be below the current detection threshold erg/s . We interpret these results by means of a magnetically-threaded disk model: when at peak luminosity, the neutron star (NS) is close to spin equilibrium, its inner disk edge r_m ~ 10^8 cm is approximately half the corotation radius r_{co}, and radiation pressure dominates the disk out to r_{tr} ~ 10^9 cm. In the radiation pressure-dominated regime, r_m grows very slowly as the mass inflow rate drops: as a result, r_m < r_{co} remains valid until the mass accretion rate becomes ~ the Eddington accretion rate, allowing a wide range of accretion luminosities to the NS. Once the mass accretion rate is below Eddington, accretion onto the NS is inhibited because r_m > r_{co}, and the source luminosity is expected to drop by a large factor. We conclude that a magnetically threaded, radiation pressure-dominated disk, around a highly magnetized NS (B~10^{13} G) offers the best intepretation for all the currently observed properties of NuSTAR J095551+6940.8. This source offers an unprecedented opportunity to study the disk-magnetosphere interaction in a new regime of supercritical accretion, and across the transition between-radiation pressure and gas-pressure dominance inside the disk.
8 pages, 3 figures, submitted to MNRAS
References in corpus (7)
- An Ultraluminous X-ray Source Powered by An Accreting Neutron Star
- Extensive HST Ultraviolet Spectra and Multi-wavelength Observations of SN 2014J in M82 Indicate Reddening and Circumstellar Scattering by Typical Dust
- The ultra luminous X-ray source NuSTAR J095551+6940.8: A magnetar in a high mass X-ray binary
- NuSTAR J095551+6940.8: a highly magnetised neutron star with super-Eddington mass accretion
- An ultraluminous nascent millisecond pulsar
- Can disk-magnetosphere interaction models and beat frequency models for quasi-periodic oscillation in accreting X-ray pulsars be reconciled?
- Super-Eddington accretion in ultra-luminous neutron star binary
Cited by in corpus (19)
- An accreting pulsar with extreme properties drives an ultraluminous x-ray source in NGC 5907
- Discovery of coherent pulsations from the Ultraluminous X-ray Source NGC 7793 P13
- Pulsing ULXs: tip of the iceberg?
- ULXs: Neutron Stars vs Black Holes
- The Ups & Downs of Accreting X-Ray Pulsars: Decade-long observations with the Fermi Gamma-Ray Burst Monitor
- Super-Eddington accretion onto a magnetized neutron star
- Lense-Thirring precession in ULXs as a possible means to constrain the neutron star equation-of-state
- A ~60-day super-orbital period originating from the ultraluminous X-ray pulsar in M82
- Super-Eddington Emission from Accreting, Highly Magnetised Neutron Stars with a Multipolar Magnetic Field
- Accreting magnetars: linking ultraluminous X-ray pulsars and the slow pulsation X-ray pulsars
- Accretion mode of the Ultra-Luminous X-ray source M82 X-2
- Constraining the dipolar magnetic field of M82 X-2 by the accretion model
- On the magnetic field of the ultraluminous X-ray pulsar M82 X-2
- GRMHD simulations of accreting neutron stars I: nonrotating dipoles
- The Great Pretenders Among the ULX Class
- A Striking Confluence Between Theory and Observations of High-Mass X-ray Binary Pulsars
- Magnetically Threaded Thin Disks in the Presence of the Quadrupole Magnetic Field
- The nature of the X-ray pulsar in M31: an intermediate mass X-ray binary?
- Do the periodic activities of repeating fast radio bursts represent the spins of neutron stars?